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Jinshu Su

Publications and source records attributed to Jinshu Su.

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Enhancing FANET Routing Resilience: A Fuzzy-Driven Bio-Inspired Approach and Its Quantitative Evaluation

In flying ad hoc networks, the high mobility of unmanned aerial vehicles leads to rapid topology changes and unstable links. Clustering can simplify topology management, yet maintaining stable cluster structures remains challenging in highly dynamic environments. This paper employs multi-factor optimization to enhance the artificial bee colony-based cluster head election algorithm and introduces a dual-layer beacon mechanism for cluster maintenance, thereby improving cluster stability and reducing reconfiguration overhead. Meanwhile, although shortening the hello interval helps capture link variations in a timely manner, it significantly increases control overhead. To address this issue, a fuzzy logic-based hello interval controller is proposed to adaptively adjust control message frequency according to network dynamics, effectively reducing overhead while preserving transmission performance. Furthermore, to quantitatively evaluate routing resilience in large-scale and highly dynamic scenarios, this paper proposes a parameter sensitivity index to characterize both overall protocol performance and its sensitivity to environmental variations. The proposed protocol is compared with common baseline schemes in NS-3 simulations, and the resilience evaluation framework analysis reveals significant advantages in overall performance while exposing the trade-off between peak performance and parametric stability.

cs.NI

The Small-World Beneath LEO Satellite Coverage: Ground Hubs in Multi-Shell Constellations

In recent years, the emergence of large-scale Low-Earth-Orbit (LEO) satellite constellations has introduced unprecedented opportunities for global connectivity. However, routing efficiency and inter-shell communication remain key challenges in multi-shell architectures. This paper investigates the structural properties and network dynamics of a representative six-shell mega-constellation composed of 10,956 satellites and 198 gateway stations (GSs). Leveraging tools from complex network analysis, we identify several critical findings: (1) the constellation exhibits strong small-world characteristics, enabling efficient routing despite large network diameters; (2) GS relays play a pivotal role in enhancing inter-shell connectivity by bridging otherwise disconnected components; (3) feeder links significantly reduce average path length, making long-haul communication more feasible; (4) betweenness analysis reveals load imbalances among GSs, indicating the need for traffic-aware management strategies; (5) the architecture offers excellent spatial coverage and resilience, maintaining connectivity and low routing costs even under GS failures. These insights not only explain the design rationale behind current mega-constellations like SpaceX Starlink, but also provide valuable guidance for the evolution of future satellite network infrastructures.

cs.NI